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Justesen, M. L.

Publications and source records attributed to Justesen, M. L..

2 recordsLinked to original sources

The metallome of Methanosarcina barkeri during electron uptake from acathode

Electromethanogenesis, the cathode-dependent reduction of CO2 to CH4 by methanogens, offers a sustainable route to methane fuel. Methanosarcina barkeri lacks surface-exposed multiheme cytochromes for extracellular electron transfer (EET). Instead, we recently showed that surface-bound G-quadruplex ribonucleic acids (G4-RNA) are required for EET, yet how electrons traverse this extracellular matrix remains unresolved. Here, we quantified metal accumulation during cathodic growth by inductively coupled plasma mass spectrometry in cells grown on cathodes poised at -430 mV versus the standard hydrogen electrode, using acetate-grown cells, open-circuit controls and abiotic cathodes for comparison. Cathode-grown M. barkeri showed CH4 buildup attributable to cathodic electrons (2.1 {+/-} 0.8% CH4), whereas open-circuit controls showed negligible increase (0.26 {+/-} 0.15% CH4). Cathode-bound cells exhibited [~]55-fold enrichment in Co, Ni and Mo, and 5- to 21-fold enrichment in Cu, Zn, and Fe relative to acetate-grown cells; neither acetate-grown cells nor abiotic cathodes accumulated metals. To resolve where metals reside, we mapped the elemental distribution in acetate-grown cells by scanning transmission electron microscopy-energy dispersive X-ray spectroscopy and high-resolution nano X-ray fluorescence. Fe co-localized with phosphorus in intracellular storage bodies, whereas Co and Zn localized within the extracellular capsule. Together, these data indicate selective metal sequestration during electromethanogenesis and raise the possibility that certain metals associate with G4-RNA and/or the methanochondroitin matrix to support charge transfer at the cell surface. This metalomic fingerprint provides a new proxy for dissecting archaeal EET strategies and may inform the design of more efficient bioelectrochemical systems.

microbiology↗

Comparative electric and ultrastructural studies of cable bacteria reveal new components of conduction machinery

Cable bacteria encompass at least two genera, and they are known to vary greatly in habitat preferences and filament thickness. We systematically investigated variations and similarities in cellular structures and electrical properties of different cable bacteria strains. Using SEM, TEM, STEM-EDX and ToF-SIMS, we characterized shared features of cable bacteria, such as inner and outer membranes, surface layer and cell junction architecture, as well as strain specific features, like the number and size of periplasmic conductive fibers (PCFs). Our data indicates that the PCFs are organized as loose stranded rope-like structures. With spatially resolved elemental analysis we detected nickel-containing co-factors within the PCF of cable bacteria strains in both genera suggesting a conserved conduction mechanism. Electrical conductivity of different cable bacteria strains showed a range of values covering three orders of magnitude indicating an unknown metabolic adaptation. Using cryogenic electron tomography we discovered multiple polar chemosensory arrays, abundant cytoplasmic inner membrane-attached vesicles (IMVs), polysomes and inner membrane invaginations that shed light on cable bacteria metabolism including complex motility control mechanisms, localized protein synthesis, and membrane remodeling. We propose that the IMVs discovered in this work are novel metabolic hubs closely connected to the unique conductive fiber structure of cable bacteria.

microbiology↗